Design Parameters of Tissue-Engineering Scaffolds at the Atomic Scale

被引:26
|
作者
Jekhmane, Shehrazade [1 ]
Prachar, Marek [1 ]
Pugliese, Raffaele [2 ]
Fontana, Federico [2 ,3 ]
Medeiros-Silva, Joao [1 ]
Gelain, Fabrizio [2 ,3 ]
Weingarth, Markus [1 ]
机构
[1] Univ Utrecht, Fac Sci, Dept Chem, Bijvoet Ctr Biomol Res,NMR Spect, Padualaan 8, NL-3584 CH Utrecht, Netherlands
[2] Fdn IRCCS Casa Sollievo Sofferenza, Unita Ingn Tissutale, Viale Cappuccini 1, I-71013 San Giovanni Rotondo, Italy
[3] ASST Grande Osped Metropolitano Niguarda, Ctr Nanomed & Tissue Engn, Piazza Osped Maggiore 3, I-20162 Milan, Italy
关键词
hydrogels; regenerative medicine; self-assembling peptides; solid-state NMR; tissue engineering; STATE NMR-SPECTROSCOPY; SIDE-CHAIN PROTONS; SOLID-STATE; ISOLATED FIBRILS; HYDROGEL; DYNAMICS; RESOLUTION; PEPTIDES; BACKBONE; PROTEINS;
D O I
10.1002/anie.201907880
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Stem-cell behavior is regulated by the material properties of the surrounding extracellular matrix, which has important implications for the design of tissue-engineering scaffolds. However, our understanding of the material properties of stem-cell scaffolds is limited to nanoscopic-to-macroscopic length scales. Herein, a solid-state NMR approach is presented that provides atomic-scale information on complex stem-cell substrates at near physiological conditions and at natural isotope abundance. Using self-assembled peptidic scaffolds designed for nervous-tissue regeneration, we show at atomic scale how scaffold-assembly degree, mechanics, and homogeneity correlate with favorable stem cell behavior. Integration of solid-state NMR data with molecular dynamics simulations reveals a highly ordered fibrillar structure as the most favorable stem-cell scaffold. This could improve the design of tissue-engineering scaffolds and other self-assembled biomaterials.
引用
收藏
页码:16943 / 16951
页数:9
相关论文
共 50 条
  • [21] Micro-finite element models of bone tissue-engineering scaffolds
    Lacroix, Damien
    Chateau, Arnaud
    Ginebra, Maria-Pau
    Planell, Josep A.
    BIOMATERIALS, 2006, 27 (30) : 5326 - 5334
  • [22] Measurements of metabolic rates for cartilage tissue-engineering design
    Zhou, SD
    Cui, ZF
    Urban, JPG
    INTERNATIONAL JOURNAL OF EXPERIMENTAL PATHOLOGY, 2005, 86 (03) : A11 - A12
  • [23] Biomaterials and scaffold design: key to tissue-engineering cartilage
    Raghunath, Joanne
    Rollo, John
    Sales, Kevin M.
    Butler, Peter E.
    Seifalian, Alexander M.
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2007, 46 : 73 - 84
  • [24] Cross-Linking of Gelatin and Chitosan Complex Nanofibers for Tissue-Engineering Scaffolds
    Qian, Yong-Fang
    Zhang, Kui-Hua
    Chen, Feng
    Ke, Qin-Fei
    Mo, Xiu-Mei
    JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2011, 22 (08) : 1099 - 1113
  • [25] Cryogel Scaffolds for Tissue-Engineering: Advances and Challenges for Effective Bone and Cartilage Regeneration
    Carriero, Vito Cosimo
    Di Muzio, Laura
    Petralito, Stefania
    Casadei, Maria Antonietta
    Paolicelli, Patrizia
    GELS, 2023, 9 (12)
  • [26] Tissue-engineering scaffolds: can we re-engineer mother nature?
    Simpson, David G.
    Bowlin, Gary L.
    EXPERT REVIEW OF MEDICAL DEVICES, 2006, 3 (01) : 9 - 15
  • [27] Science of nanofibrous scaffold fabrication: strategies for next generation tissue-engineering scaffolds
    Madurantakam, Parthasarathy A.
    Cost, Christopher P.
    Simpson, David G.
    Bowlin, Gary L.
    NANOMEDICINE, 2009, 4 (02) : 193 - 206
  • [28] Silica-incorporated polyelectrolyte-complex fibers as tissue-engineering scaffolds
    Wan, ACA
    Tai, BCU
    Leck, KJ
    Ying, JY
    ADVANCED MATERIALS, 2006, 18 (05) : 641 - +
  • [29] Electrospun nanofiber meshes with tailored architectures and patterns as potential tissue-engineering scaffolds
    Wang, Yazhou
    Wang, Guixue
    Chen, Liang
    Li, Hao
    Yin, Tieying
    Wang, Bochu
    Lee, James C-M
    Yu, Qingsong
    BIOFABRICATION, 2009, 1 (01)
  • [30] Sol–gel derived mesoporous bioactive glass fibers as tissue-engineering scaffolds
    Jing Yi
    Guangfeng Wei
    Xiaohui Huang
    Lingzhi Zhao
    Quan Zhang
    Chengzhong Yu
    Journal of Sol-Gel Science and Technology, 2008, 45 : 115 - 119